Intraurban land cover classification using IKONOS II images and data mining techniques: A comparative analysis

V. da Silva Brum, L. M. Garcia, T. Korting, C. M. Duque, Rafael Duarte Coelho dos
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引用次数: 2

Abstract

High spatial resolution image analysis acquired over urban areas has been performed with success using Geographic Object Based Analysis (GEOBIA). However, it was observed that the use of data mining techniques in the image analysis procedures can speed up the processing time by selecting the most appropriate parameters for classification process without decreasing the classification accuracy. Therefore, this work aims at comparing some algorithms for classifying intra-urban land cover using IKONOS II images and data mining techniques. Three classification algorithms, KNN, MLP and C4.5 were analyzed.
基于IKONOS II图像和数据挖掘技术的城市内土地覆盖分类:比较分析
利用基于地理对象的分析(GEOBIA)成功地对城市地区获得的高空间分辨率图像进行了分析。然而,在图像分析过程中使用数据挖掘技术可以在不降低分类精度的情况下选择最合适的分类参数,从而加快处理时间。因此,本研究旨在比较使用IKONOS II图像和数据挖掘技术进行城市内土地覆盖分类的一些算法。分析了KNN、MLP和C4.5三种分类算法。
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